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Multi-index change detection using Dempster-Shafer evidence theory: application to land-cover monitoring

机译:使用Dempster-Shafer证据理论的多指数变化检测:应用于陆地监测

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The detection of changes affecting continental surfaces has important applications in hydrological, meteorological, and climatic modelling, so that numerous change indices have already been proposed that use remote sensing data. In this work, we show the interest of combining several of them to improve change detection performance. The combination is done in the Dempster-Shafer evidence theory framework, therefore allowing ignorance modelling. Each mass function is defined either based on the result of the corresponding mono-index analysis, that is done using an 'a contrario' approach, or from generic sigmoid function in the absence of pdf assumption. Using actual SPOT/HRV data, we analyse the performance of different change indices, and their combination in different application cases: forest fires, forest logging either in pine forest or in mixed forest, and winter vegetation cover of fields in intensive farming areas. Finally, we also show the interest of the indices derived from the Information Theory, some of which being original.
机译:影响大陆表面的变化的检测在水文,气象和气候建模中具有重要应用,因此已经提出了许多使用遥感数据的更改指标。在这项工作中,我们表现出与其中几个组合改善变化检测性能的兴趣。该组合在Dempster-Shafer证据理论框架中完成,因此允许无知建模。每个质量函数基于相应的单索引分析的结果,即使用“逆转”方法,或在不存在PDF假设的情况下从通用的SIGMOID函数完成。使用实际的SPOC / HRV数据,我们分析了不同的变化指数的性能,以及它们在不同的应用案例中的组合:森林火灾,森林测井,在松树林或混合林中,以及集约化农业领域的冬季植被封面。最后,我们还表明了来自信息理论的指标的兴趣,其中一些是原创的。

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